If the activation energy for a given compound is found to be 103 kJ/mol, with a frequency factor of 4.0 × 1013 s-1, what is the rate constant for this reaction at 398 K?2.5 × 107 s-18.2 s-13.9 × 1010 s-11.2 s-11.7 × 1010 s-1

[tex]\begin{array}{rcl}k & = & Ae^{(-E_{a}/{RT)}}\\k & = & 4.0 \times 10^{13}\times e^{-(103000/{(8.314\times398))}}\\& = & 4.0 \times 10^{13}\times e^{-(103000/{3309)}}\\& = & 4.0 \times 10^{13}\times e^{-31.13}\\& = & 4.0 \times 10^{13}\times 3.130 \times 10^{-14}\\& = & \mathbf{1.2} \textbf{ s}^{\mathbf{-1}}\\\end{array}\\\text{The value of the rate constant is $\large \boxed{\textbf{1.2 s}^{\mathbf{-1}}}$}[/tex]

khuranashilpa76 khuranashilpa76 · Answer 2 · 2022-07-26T19:24:15+02:00

The rate constant for this reaction at 398 K is

The answer is option D.1.2 s-11.7 × 1010 s-1.

What is activation energy?

Activation strength is described because the minimum amount of greater strength required by a reacting molecule to get converted into a product.
Activation energy may additionally be described because the minimal quantity of strength had to activate or energize molecules or atoms for you to go through a chemical response or transformation.

k=(4.0×1013s−1)e−(103×103Jmol)(8.3145JK−mol)(398)

k-1.21s−1

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